Multi-mode evaluation of power-maximizing cross-flow turbine controllers

Dominic Forbush , Robert J. Cavagnaro , James Donegan , Jarlath McEntee , Brian Polagye
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引用次数: 12

Abstract

A general method for predicting and evaluating the performance of three candidate cross-flow turbine power-maximizing controllers is presented using low-order dynamic simulation, scaled laboratory experiments, and full-scale field testing. For each testing mode and candidate controller, performance metrics quantifying energy capture (ability of a controller to maximize power), variation in torque and rotation rate (related to drive train fatigue), and variation in thrust loads (related to structural fatigue) are quantified for two purposes. First, for metrics that could be evaluated across all testing modes, we considered the accuracy with which simulation or laboratory experiments could predict performance at full scale. Second, we explored the utility of these metrics to contrast candidate controller performance. For these turbines and set of candidate controllers, energy capture was found to only differentiate controller performance in simulation, while the other explored metrics were able to predict performance of the full-scale turbine in the field with various degrees of success. Effects of scale between laboratory and full-scale testing are considered, along with recommendations for future improvements to dynamic simulations and controller evaluation.

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功率最大化横流涡轮控制器的多模式评估
通过低阶动态仿真、实验室实验和全尺寸现场测试,提出了一种预测和评估三种候选跨流涡轮功率最大化控制器性能的通用方法。对于每种测试模式和候选控制器,量化能量捕获(控制器最大功率的能力)、扭矩和旋转速率变化(与传动系统疲劳有关)以及推力负载变化(与结构疲劳有关)的性能指标有两个目的。首先,对于可以在所有测试模式中评估的指标,我们考虑了模拟或实验室实验可以预测全尺寸性能的准确性。其次,我们探索了这些指标的效用,以对比候选控制器的性能。对于这些涡轮机和一组候选控制器,发现能量捕获仅在仿真中区分控制器性能,而其他探索的指标能够预测全尺寸涡轮机在现场的性能,并取得了不同程度的成功。考虑了实验室和全尺寸测试之间的规模影响,以及对未来改进动态模拟和控制器评估的建议。
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